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Fully Integrated Microfluidic Platform Coupled with Magnetic Sensing for Rapid Detection of Cardiovascular Disease
Bo Bao1, Xinran Tian1, Ridong Wang1
1State Key Laboratory of Precision Measurement Technology and Instruments, Tianjin University, Tianjin 300072, China.
Insights
A new microfluidic magnetic sensing platform enables rapid, sensitive detection of heart-type fatty acid binding protein (H-FABP) for early acute myocardial infarction diagnosis. This automated system offers potential for quick point-of-care screening.
Area of Science:
- Biomarker detection
- Cardiovascular diagnostics
- Microfluidic systems
Background:
- Acute myocardial infarction (AMI) diagnosis requires rapid, sensitive biomarkers.
- Traditional methods for detecting biomarkers like heart-type fatty acid binding protein (H-FABP) are often complex and time-consuming.
- There is a need for automated, efficient diagnostic tools for early AMI detection.
Purpose of the Study:
- To develop an integrated microfluidic platform with magnetic sensing for rapid H-FABP detection.
- To enhance the sensitivity and efficiency of biomarker detection for early AMI diagnosis.
- To create a system suitable for point-of-care applications and large-scale screening.
Main Methods:
- A multifunctional microfluidic chip was designed with active-passive mixing, a microcoil, and a magnetic sensing region.
- A spin-exchange relaxation-free (SERF) atomic magnetometer was utilized for high-resolution magnetic field mapping.
- The system integrated on-chip pretreatment for rapid biomarker analysis.
Main Results:
- The developed platform achieved a high-resolution magnetic field mapping with pT-range sensitivity.
- The detection limit for H-FABP was determined to be 1.57 pg/mL.
- The entire detection process, including sample preparation, was completed within 25 minutes.
Conclusions:
- The integrated microfluidic magnetic sensing system provides a sensitive and rapid method for H-FABP detection.
- The platform's compact design, high sensitivity, and fast processing capability are ideal for point-of-care diagnostics.
- This technology shows significant potential for early disease screening and improved clinical outcomes in cardiovascular diagnostics.
Abstract:
Cardiovascular diseases (CVDs), especially acute myocardial infarction (AMI), represent a major global health challenge with high morbidity and mortality rates. Early and precise diagnosis of AMI is vital for initiating prompt treatment, minimizing myocardial damage, and improving patient survival. Heart-type fatty acid binding protein (H-FABP) has emerged as a specific biomarker for the early detection of AMI, particularly within the initial hours following myocardial injury. However, the application of traditional biomarker detection is often constrained by complex system configurations and time-consuming sample preprocessing procedures, which hinder their efficiency in large-scale screenings. Therefore, the development of simple and automated diagnostic methods for the quick and accurate identification of biomarkers is particularly significant. The magnetic method, which shows high stability, facile manipulation with an external magnetic field, and low background noise, stands out in comparison to conventional detection methods such as optical, mechanical, and electrical methods. Microfluidic chips not only further enhance detection sensitivity but also enable the complete on-chip pretreatment of biomarkers, allowing for their rapid and efficient detection. In this study, a fully integrated microfluidic platform coupled with magnetic sensing was proposed for the detection of biomarkers. The device integrates a multifunctional microfluidic chip equipped with an active-passive mixing module, a microcoil, and a magnetic sensing region. By employing a spin-exchange relaxation-free (SERF) atomic magnetometer, a high-resolution magnetic field mapping, with submillimeter spatial precision and detection sensitivity in the pT range, was constructed. The detection limit of H-FABP reached 1.57 pg/mL, with the entire detection process completed in 25 min. Owing to its compact design, high sensitivity, and quick processing capability, the developed system holds strong potential for rapid point-of-care diagnostics and early disease screening in clinical applications.
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